Exotic domain morphologies in ferroic materials are an exciting avenue for the development of novel nanoelectronics. In this work we have used large scale molecular dynamics to construct a straintemperature phase diagram of the domain morphology of PbTiO3 ultrathin films. Sampling a wide interval of strain values over a temperature range up to the Curie temperature Tc, we found that epitaxial strain induces the formation of a variety of closure- and in-plane domain morphologies. The local strain and ferroelectric–antiferrodistortive coupling at the film surface vary for the strain mediated transition sequence and this could offer a route for experimental observation of the morphologies. Remarkably, we identify a new nanobubble domain...
We present molecular dynamics simulations of a realistic model of an ultrathin film of BaTiO3 sandwi...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
peer reviewedObservation of a new type of nanoscale ferroelectric domains, termed as “bubble domains...
Lead zirconate titanate is a ferroelectric material of considerable interest with a wide range of te...
We report first-principle atomistic simulations of the effect of local strain gradients on the nanos...
Ab initio effective Hamiltonian simulations reveal a strain-induced control of domain morphology in ...
We study the interplay between epitaxial strain, film thickness, and electric field in the creation,...
Epitaxial (100)/(001)-oriented PbTiO3 films with thickness of 2.8 μm were grown on Nb-doped (100) Sr...
Epitaxial (100)/(001)-oriented PbTiO3 films with thickness of 2.8 μm were grown on Nb-doped (100) Sr...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
Phase and domain structures in ferroelectric materials play a vital role in determining their dielec...
Phase and domain structures in ferroelectric materials play a vital role in determining their dielec...
We present molecular dynamics simulations of a realistic model of an ultrathin film of BaTiO3 sandwi...
We present molecular dynamics simulations of a realistic model of an ultrathin film of BaTiO3 sandwi...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
peer reviewedObservation of a new type of nanoscale ferroelectric domains, termed as “bubble domains...
Lead zirconate titanate is a ferroelectric material of considerable interest with a wide range of te...
We report first-principle atomistic simulations of the effect of local strain gradients on the nanos...
Ab initio effective Hamiltonian simulations reveal a strain-induced control of domain morphology in ...
We study the interplay between epitaxial strain, film thickness, and electric field in the creation,...
Epitaxial (100)/(001)-oriented PbTiO3 films with thickness of 2.8 μm were grown on Nb-doped (100) Sr...
Epitaxial (100)/(001)-oriented PbTiO3 films with thickness of 2.8 μm were grown on Nb-doped (100) Sr...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
Phase and domain structures in ferroelectric materials play a vital role in determining their dielec...
Phase and domain structures in ferroelectric materials play a vital role in determining their dielec...
We present molecular dynamics simulations of a realistic model of an ultrathin film of BaTiO3 sandwi...
We present molecular dynamics simulations of a realistic model of an ultrathin film of BaTiO3 sandwi...
In epitaxial ferroelectric thin films under tensile strain, a transition from 180 degrees domains to...
peer reviewedObservation of a new type of nanoscale ferroelectric domains, termed as “bubble domains...